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22-AUGUST-2008 06:13:22 - Aminoacyl tRNA synthetase Aminoacyl tRNA synthetase for aspartic acid Class II aaRS. It is a dimer of two identical subunits blue and green; tRNA molecules are shown in red. more details... Aminoacyl tRNA synthetase for aspartic acid Class II aaRS. It is a dimer of two identical subunits blue and green; tRNA molecules are shown in red. more details... An aminoacyl tRNA synthetase aaRS is an enzyme that catalyzes the esterification of a specific amino acid or its precursor to one of all its compatible cognate tRNAs to form an aminoacyl-tRNA. Contents 1 Mechanism 2 Reaction 3 Classes 4 Structures 5 Evolution 6 References 7 External links Mechanism The synthetase first binds ATP and the corresponding amino acid or its precursor to form an aminoacyl-adenylate and release inorganic pyrophosphate PPi. The adenylate-aaRS complex then binds the appropriate tRNA molecule, and the amino acid is transferred from the aa-AMP to either the 2'- or 3'-OH of the last tRNA base A76 at the 3'-end. Some synthetases also mediate a proofreading reaction to ensure high fidelity of tRNA charging; if the tRNA is found to be improperly charged, the aminoacyl-tRNA bond is hydrolyzed. Reaction Reaction: amino acid + ATP → aminoacyl-AMP + PPi aminoacyl-AMP + tRNA → aminoacyl-tRNA + AMP Sum of 1 and 2: amino acid + tRNA + ATP → aminoacyl-tRNA + AMP + PPi Classes There are two classes of aminoacyl tRNA synthetase:1 Class I has two highly conserved sequence motifs. It aminoacylates at the 2'-OH of an adenosine nucleotide, and is usually monomeric or dimeric one or two subunits, respectively. Class II has three highly conserved sequence motifs. It aminoacylates at the 3'-OH of the same adenosine, and is usually dimeric or tetrameric two or four subunits, respectively. Although phenylalanine-tRNA synthetase is class II, it aminoacylates at the 2'-OH. The amino acids are attached to the hydroxyl -OH group of the adenosine via their carboxyl -COOH groups. Regardless of where the aminoacyl is initially attached to the nucleotide, the 2'-O-aminoacyl-tRNA will ultimately migrate to the 3' position via transesterification. Structures Both classes of aminoacyl-tRNA synthetases are multidomain proteins. Typically, an aaRS consists of a catalytic domain where both the above reactions take place and an anticodon binding domain which mostly interacts with the anticodon region of the tRNA and ensures binding of the correct tRNA to the protein. In addition, some aaRSs have additional RNA binding domains and ing domains2 that cleave incorrectly paired aminoacyl-tRNA molecules. The catalytic domains of all the aaRSs of a given class are found to be homologous to one another, while class I and class II aaRSs are unrelated to one another. The class I aaRSs have the ubiquitous Rossmann fold and have the antiparallel beta-strands architecture while the class II aaRSs have a unique fold made up of antiparallel beta-strands. Evolution Most of the aaRSs of a given specificity are evolutionarily closer to one another than to aaRSs of another specificity. However, AsnRS and GlnRS group within AspRS and GluRS respectively. Most of the aaRSs of a given specificity also belong to a single class. However, there are two distinct versions of the LysRS - one belonging to the class I family and the other belonging to the class II family. In addition, most of the aaRSs of a given specificity display the so-called canonical phylogenetic pattern in which the enzymes are grouped by the three domains of life - Archaea, Bacteria, and Eukarya, and the root of the phylogenetic tree is present in between the Bacterial branch and the Archaeal/Eukaryal branch. References ^ tRNA Synthetases. Retrieved on 2007-08-18. ^ High Fidelity. Retrieved on 2007-08-18. External links MeSH Amino+Acyl-tRNA+Synthetases v d e Protein biosynthesis: translation prokaryotic, eukaryotic Ribosomal proteins Initiation factor Prokaryotic, Eukaryotic - Elongation factor Prokaryotic, Eukaryotic - Release factor Prokaryotic, Eukaryotic - Ribosomal protein s6 Other concepts Aminoacyl tRNA synthetase - Reading frame - Start codon - Shine-Dalgarno sequence/Kozak consensus sequence v d e Enzymes: ligases EC 6 6.1 - Carbon-Oxygen Aminoacyl tRNA synthetase 6.2 - Carbon-Sulfur Succinyl coenzyme A synthetase - Acetyl Co-A synthetase - Long fatty acyl CoA synthetase 6.3 - Carbon-Nitrogen Glutamine synthetase - Ubiquitin ligase Von Hippel-Lindau tumor suppressor, UBE3A, Mdm2, Anaphase-promoting complex - Glutathione synthetase - CTP synthase - Adenylosuccinate synthase - Argininosuccinate synthetase - Holocarboxylase synthetase - GMP synthase - Asparagine synthetase - Carbamoyl phosphate synthetase I, II - Gamma-glutamylcysteine synthetase 6.4 - Carbon-Carbon Carbon-carbon ligases 6.5 - Phosphoric Ester DNA ligase Retrieved from http://en..org/wiki/Aminoacyl_tRNA_synthetase Categories: EC 6.1 | Protein biosynthesis Views Article Discussion this page History Personal tools Log in / create account Navigation Main page Contents Featured content Current events Random article Search Go Search Interaction Community portal Recent changes Contact Donate to Help Toolbox What links here Related changes Upload file Special pages Printable version Permanent link Cite this page Languages Deutsch Italiano 日本語 Português УкраїнÑ?ька This page was last modified on 24 April 2008, at 00:3

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